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Ratovitski, T.

Publications and source records attributed to Ratovitski, T..

2 recordsLinked to original sources

Screening of a kinase library in human Huntington disease iPSC derived striatal precursor neurons reveals a neuroprotective effect of PKC alpha and PKC beta1 inhibition

The loss of striatal medium spiny neurons is a hallmark of Huntingtons disease (HD). To identify potential disease-modifying treatments, we previously developed a human neuronal model by immortalizing and differentiating HD patient-derived iPSCs into highly homogeneous striatal precursor neurons (ISPNs). Using a 96-well screening platform, and two rounds of re-screening, we tested a kinase inhibitor library and identified 5 compounds that protected HD ISPNs from mutant huntingtin (mHTT)-induced toxicity. Among these, we prioritized the PKC-/{beta}1 inhibitor GO6976, which rescued HD ISPNs from mHTT toxicity in a dose-dependent manner. Further, we found increased phosphorylation of PKC- and PKC-{beta}1 in HD cells and tissues, while their overexpression was toxic to HD ISPNs. Knockdown of PKC-/{beta}1 protected the neurons, and both isoforms interacted and colocalized with HTT. These results suggest that PKC-/{beta}1 plays a role in HD neurodegeneration, and that inhibiting their activity may offer a potential therapeutic approach for HD. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=194 SRC="FIGDIR/small/677178v2_ufig1.gif" ALT="Figure 1"> View larger version (48K): org.highwire.dtl.DTLVardef@256d6org.highwire.dtl.DTLVardef@1931e7borg.highwire.dtl.DTLVardef@1b6598borg.highwire.dtl.DTLVardef@b0bbb5_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIHD patient-derived iPSC-based striatal precursor neurons (ISPNs) were used to screen and identify neuroprotective compounds. C_LIO_LIThe PKC-/{beta}1 inhibitor GO6976 rescues HD ISPNs from mutant huntingtin (HTT)-induced toxicity. C_LIO_LIThe phosphorylation of PKC-/{beta}1 is elevated in HD cell and tissues, and PKC-/{beta}1 interact with both wild-type and mutant huntingtin. C_LIO_LIOverexpression of PKC-/{beta}1 is toxic to HD ISPNs, while its knockdown protects the neurons. C_LI

neuroscience↗

Huntingtin interactome reveals huntingtin role in regulation of double strand break DNA damage response (DSB/DDR), chromatin remodeling and RNA processing pathways

Huntingtons Disease (HD), a progressive neurodegenerative disorder with no disease-modifying therapies, is caused by a CAG repeat expansion in the HD gene encoding polyglutamine-expanded huntingtin (HTT) protein. Mechanisms of HD cellular pathogenesis and cellular functions of the normal and mutant HTT proteins are still not completely understood. HTT protein has numerous interaction partners, and it likely provides a scaffold for assembly of multiprotein complexes many of which may be altered in HD. Previous studies have implicated DNA damage response in HD pathogenesis. Gene transcription and RNA processing has also emerged as molecular mechanisms associated with HD. Here we used multiple approaches to identify HTT interactors in the context of DNA damage stress. Our results indicate that HTT interacts with many proteins involved in the regulation of interconnected DNA repair/remodeling and RNA processing pathways. We present evidence for a role for HTT in double strand break repair mechanism. We demonstrate HTT functional interaction with a major DNA damage response kinase DNA-PKcs and association of both proteins with nuclear speckles. We show that S1181 phosphorylation of HTT is regulated by DSB, and can be carried out (at least in vitro) by DNA-PK. Furthermore, we show HTT interactions with RNA binding proteins associated with nuclear speckles, including two proteins encoded by genes at HD modifier loci, TCERG1 and MED15, and with chromatin remodeling complex BAF. These interactions of HTT may position it as an important scaffolding intermediary providing integrated regulation of gene expression and RNA processing in the context of DNA repair mechanisms.

neuroscience↗